Waste tire rubber steel wire separation device based on resource recycling technology
By combining the helical gear-driven flattening and transmission component with the electric rotating steel brush, the problem of rubber material adhesion on the steel wire ring is solved, achieving deep separation and efficient recycling of rubber and steel wire.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- HUBEI ZHONGSHUO ENVIRONMENTAL PROTECTION CO LTD
- Filing Date
- 2026-03-20
- Publication Date
- 2026-05-12
Smart Images

Figure CN122008446A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of tire rubber steel wire separation technology, and in particular to a waste tire rubber steel wire separation device based on resource recycling technology. Background Technology
[0002] Tire rubber-steel wire separation refers to the effective separation of rubber, steel wire, and fiber materials from waste tires for resource recycling. According to the latest publicly available information, this process is mainly completed through physical and mechanical means, without the need for chemical additives, and is characterized by being environmentally friendly and efficient. The steel wire separator is a piece of equipment independently developed based on practical experience in response to the rising trend in the waste tire recycling market. This equipment is driven by a motor and reducer, and utilizes the interaction between the cutter roller and the fixed blade to achieve fine crushing, steel wire separation, and screening of the material in one step.
[0003] Existing waste tire rubber-steel wire separation devices are generally driven by a motor and reducer, utilizing the interaction between the cutter roller and the fixed blade to achieve fine crushing, steel wire separation, and screening of the material, thereby achieving the effect of waste material processing. However, in existing technologies, after the cutter roller separates the product, some relatively sticky rubber material still remains on the steel wire ring. Therefore, when the steel wire ring is reused, the secondary processing of the steel wire still requires cumbersome treatment. To address this issue, we propose a waste tire rubber-steel wire separation device based on resource recycling technology. Summary of the Invention
[0004] To address the aforementioned problems, this invention proposes a waste tire rubber and steel wire separation device based on resource recycling technology. This device primarily utilizes a helical gear on a slotted bin, which, after being driven by an electric main gear, causes the inclined sliding seat on the flattening and conveying component to move to a suitable position. This position allows the carrying guide roller and the flattening guide roller to clamp the product. After clamping, the built-in motor, worm gear, spline shaft, and turbine drive the first and second hinge rods, which in turn cause the flattening and carrying guide rollers to flatten the product. After flattening, the adjusting and dispersing component drives the first and second hydraulic telescopic seats, which in turn allow an electric rotating steel brush to brush off the remaining rubber material from the flattened steel wire rings, achieving a deep separation effect and facilitating the efficient recycling of the steel wire rings.
[0005] To achieve the above objectives, the present invention provides the following technical solution:
[0006] The waste tire rubber and steel wire separation device based on resource recycling technology includes a bearing feeding and discharging component, a separation mechanism, a connecting and transferring mechanism, an adjusting and dispersing component, and a flattening and conveying component. The bearing base on the bearing feeding and discharging component is provided above one end of the bearing base, and the rear base on the separation mechanism is provided above the outer end of the rear base. The grooved bin on the adjusting and dispersing component is provided on the outer side of the rear base, and the inclined output end of the adjusting and dispersing component is threadedly connected to the inclined sliding seat on the flattening and conveying component.
[0007] The flattening and conveying component also includes a limiting plate and a bearing guide roller, and the outer end of the inclined sliding seat is bolted to the limiting plate on which the bearing guide roller is installed.
[0008] As a further technical solution, the material feeding and discharging component also includes a large material carrier box, a small material carrier box, and a front base. The large material carrier box is arranged above the middle part of the carrier base, the small material carrier box is arranged on the outer rear end of the carrier base, and the front base is arranged above the other end of the carrier base.
[0009] As a further technical solution, the material feeding and discharging component also includes a hydraulic telescopic rod, an electric rotating seat, a bolted frame, a bearing shaft plate, a rotary motor, and a transmission guide bar. The hydraulic telescopic rod is arranged above the middle of the front base, and the output end of the hydraulic telescopic rod is provided with an electric rotating seat. The top outer side of the electric rotating seat is bolted to a bolted frame, and the top outer side of the bolted frame is bolted to a bearing shaft plate. The inner side of the bearing shaft plate is provided with a transmission guide bar connected to the output end of the rotary motor.
[0010] As a further technical solution, the separation mechanism also includes a control panel, a bolted seat, a through box, and a finned shaft compartment. The control panel is bolted to the outer end of the rear base, and the through box is bolted to the upper inner end of the rear base via the bolted seat. The finned shaft compartment is provided on the inner side of the through box.
[0011] As a further technical solution, the separation mechanism also includes a transmission housing, a drive motor, an isolation shaft plate, and a pressure roller. The outer end of the fin shaft compartment is provided with a transmission housing connected to the output end of the drive motor, and the output end of the fin shaft compartment passes through the isolation shaft plate and is connected to the pressure roller.
[0012] As a further technical solution, the connecting transfer mechanism also includes a toothed ring, a guide wheel, a slotted rod, an electric gear, a lead screw assembly, a sliding base, a first hydraulic arm, and a second hydraulic arm. The output end of the bolted column is equipped with a toothed ring, and the inner side of the toothed ring is tumblingly connected to the slotted rod via the guide wheel. An electric gear is provided above the outer end of the slotted rod. The output end of the slotted rod is equipped with a lead screw assembly, and the output end of the lead screw assembly is threadedly connected to the sliding base. The outer side of the sliding base is bolted to the first hydraulic arm on which the second hydraulic arm is installed.
[0013] As a further technical solution, the connecting and transferring mechanism also includes a sleeve, an electric reduction gear, a rack arm, an electric rotating rod, a pneumatic locking bar, and a mounting nozzle. The output end of the second hydraulic arm is provided with a sleeve, and the inside of the sleeve is provided with a rack arm that connects to the output end of the electric reduction gear. The outer end of the rack arm is provided with an electric rotating rod, and the output end of the electric rotating rod is provided with a mounting nozzle for installing the pneumatic locking bar.
[0014] As a further technical solution, the adjusting and dispersing component also includes an electric main gear, a helical gear, a pneumatic telescopic shaft, and an array screw. The slotted chamber is equipped with an electric main gear, and the output end of the electric main gear is equipped with a helical gear on which the pneumatic telescopic shaft is mounted. The output end of the pneumatic telescopic shaft is equipped with an array screw.
[0015] As a further technical solution, the adjusting and dispersing component also includes a straight sliding seat, a first hydraulic telescopic seat, a second hydraulic telescopic seat, and an electric rotating steel brush. The straight output end of the array screw is provided with a threaded straight sliding seat, and the outer side of the straight sliding seat is provided with a bolted first hydraulic telescopic seat. The output end of the first hydraulic telescopic seat is provided with a second hydraulic telescopic seat on which the electric rotating steel brush is installed.
[0016] As a further technical solution, the flattening and conveying component also includes a transmission chamber, a bearing frame, a built-in motor, a worm gear, a splined shaft, a turbine, an eccentric wheel, a first hinge rod, a second hinge rod, a bearing sleeve, and a flattening guide roller. The transmission chamber is pneumatically connected to the upper outer end of the inclined sliding seat, and a bearing frame is provided inside the transmission chamber. A worm gear connected to the output end of the built-in motor is provided on one side of the bearing frame, and a splined shaft and a turbine are provided at the output end of the worm gear. An eccentric wheel is provided on the outer side of the turbine, and a first hinge rod is provided on the outer side of the eccentric wheel. A second hinge rod is hinged to one end of the first hinge rod, and a bearing sleeve connected to the splined shaft is hinged to one end of the second hinge rod. A flattening guide roller is provided at the output end of the bearing sleeve.
[0017] Compared with the prior art, the beneficial effects of the present invention are:
[0018] The invention's device primarily utilizes a helical gear on the slotted chamber, which, after being driven by an electric main gear, causes the inclined sliding seat on the flattening and conveying component to move to a suitable position. This allows the carrying guide roller and the flattening guide roller to clamp the product. After clamping, the built-in motor, worm gear, spline shaft, and turbine drive the first and second hinge rods, which in turn drive the flattening guide roller and the carrying guide roller to flatten the product. After flattening, the adjusting and dispersing component drives the first and second hydraulic telescopic seats, which then allow an electric rotating steel brush to brush off the remaining rubber material from the flattened steel wire ring, thus achieving a deep separation effect and facilitating the efficient recycling of the steel wire ring. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of a waste tire rubber and steel wire separation device based on resource recycling technology;
[0020] Figure 2 This is a schematic diagram of the structure viewed from below in this invention;
[0021] Figure 3 This is a schematic diagram of the separation mechanism in this invention;
[0022] Figure 4 This is a schematic diagram of the connecting and transferring mechanism in this invention;
[0023] Figure 5 This is a schematic diagram of the bolted frame and toothed ring in this invention;
[0024] Figure 6 This is a schematic diagram of the pneumatic locking bar and the mounting nozzle in this invention;
[0025] Figure 7 This is a schematic diagram of the structure of the dispersing and regulating component in this invention;
[0026] Figure 8 This is a schematic diagram of the structure of the helical gear and the pneumatic telescopic shaft in this invention;
[0027] Figure 9 This is a schematic diagram of the structure of the flattening transmission component in this invention.
[0028] In the diagram: 1. Loading / Discharging Components; 101. Loading Base; 102. Large Material Loading Box; 103. Small Material Loading Box; 104. Front Base; 105. Hydraulic Telescopic Rod; 106. Electric Rotary Seat; 107. Bolted Connector; 108. Loading Shaft Plate; 109. Rotary Motor; 1010. Conveyor Guide Bar; 2. Separation Mechanism; 201. Rear Base; 202. Control Panel; 203. Bolted Connector; 2 04. Through box; 205. Finned shaft compartment; 206. Transmission housing; 207. Drive motor; 208. Isolation shaft plate; 209. Pressure roller; 3. Connecting and transferring mechanism; 301. Bolted connecting column; 302. Toothed ring; 303. Guide wheel; 304. Slotted rod; 305. Electric gear; 306. Screw assembly; 307. Sliding base; 308. First hydraulic arm; 309. Second hydraulic arm; 3010. Sleeve Box; 3011, Electric reduction gear; 3012, Rack arm; 3013, Electric rotating rod; 3014, Pneumatic locking bar; 3015, Mounting jaw; 4, Adjusting and dispersing components; 401, Slotted chamber; 402, Electric main gear; 403, Helical gear; 404, Pneumatic telescopic shaft; 405, Array screw; 406, Straight sliding seat; 407, First hydraulic telescopic seat; 408, Second hydraulic telescopic seat; 4 09. Electric rotating steel brush; 5. Flattening and conveying component; 501. Inclined sliding seat; 502. Limiting plate; 503. Bearing guide roller; 504. Transmission chamber; 505. Bearing frame; 506. Built-in motor; 507. Worm gear; 508. Splined shaft; 509. Turbine; 5010. Eccentric wheel; 5011. First hinge rod; 5012. Second hinge rod; 5013. Bearing sleeve; 5014. Flattening guide roller. Detailed Implementation
[0029] In the description of this invention, it should be understood that the terms "center," "longitudinal," "lateral," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicating orientation or positional relationships, are based on the orientation or positional relationships shown in the accompanying drawings and are only for the convenience of describing the invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the invention. Furthermore, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, features defined with "first," "second," etc., may explicitly or implicitly include one or more of that feature. In the description of this invention, unless otherwise stated, "a plurality of" means two or more.
[0030] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art will understand the specific meaning of the above terms in this invention based on the specific circumstances.
[0031] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0032] Please see Figure 1-9 In this embodiment of the invention, the waste tire rubber steel wire separation device based on resource recycling technology includes a bearing feeding and discharging component 1, a separation mechanism 2, a connecting and transferring mechanism 3, an adjusting and dispersing component 4, and a flattening and conveying component 5. The bearing base 101 on the bearing feeding and discharging component 1 is provided above one end of the rear base 201 on the separation mechanism 2, and the bolt connecting column 301 on the connecting and transferring mechanism 3 is provided above the outer end of the rear base 201. The grooved bin 401 on the adjusting and dispersing component 4 is provided on the outer side of the rear base 201, and the inclined output end of the adjusting and dispersing component 4 is threadedly connected to the inclined sliding seat 501 on the flattening and conveying component 5.
[0033] The flattening and conveying component 5 also includes a limiting plate 502, a bearing guide roller 503, a transmission chamber 504, a bearing bracket 505, a built-in motor 506, a worm gear 507, a splined shaft 508, a worm 509, an eccentric wheel 5010, a first hinge rod 5011, a second hinge rod 5012, a bearing sleeve 5013, and a flattening guide roller 5014. The outer end of the inclined sliding seat 501 is bolted to the limiting plate 502 for mounting the bearing guide roller 503. The transmission chamber 504 is pneumatically connected above the outer end of the inclined sliding seat 501, and a bearing bracket 5014 is installed inside the transmission chamber 504. 5. A worm gear 507 is provided on one side of the bearing bracket 505, which is connected to the output end of the built-in motor 506. The output end of the worm gear 507 is provided with a splined shaft 508 and a turbine 509. An eccentric wheel 5010 is provided on the outer side of the turbine 509. A first hinge rod 5011 is provided on the outer side of the eccentric wheel 5010. One end of the first hinge rod 5011 is hinged to a second hinge rod 5012. One end of the second hinge rod 5012 is hinged to a bearing sleeve 5013 that is splinedly connected to the splined shaft 508. A flattening guide roller 5014 is provided at the output end of the bearing sleeve 5013.
[0034] The material handling component 1 also includes a large material carrier box 102, a small material carrier box 103 and a front base 104. The large material carrier box 102 is provided above the middle part of the carrier base 101, the small material carrier box 103 is provided on the outer side of the rear end of the carrier base 101, and the front base 104 is provided above the other end of the carrier base 101.
[0035] In embodiments of the present invention, larger waste materials are stored in a large material carrier box 102, and smaller waste materials are stored in a small material carrier box 103.
[0036] The material handling component 1 also includes a hydraulic telescopic rod 105, an electric rotating seat 106, a bolted bracket 107, a bearing shaft plate 108, a rotary motor 109, and a transmission guide bar 1010. The hydraulic telescopic rod 105 is arranged above the middle of the front base 104, and the output end of the hydraulic telescopic rod 105 is provided with an electric rotating seat 106. The top outer side of the electric rotating seat 106 is bolted to the bolted bracket 107, and the top outer side of the bolted bracket 107 is bolted to the bearing shaft plate 108. The inner side of the bearing shaft plate 108 is provided with a transmission guide bar 1010 that connects to the output end of the rotary motor 109.
[0037] In an embodiment of the present invention, during use, a sufficient quantity of products are stacked parallel on the conveyor bar 1010. When feeding is required, the hydraulic telescopic rod 105 outputs power to drive the output end to operate, so that the electric rotating seat 106 is adjusted to a suitable height position. After the electric rotating seat 106 outputs power, it drives the bolt connecting frame 107 and the bearing shaft plate 108 to operate to a suitable orientation position. When feeding is required, the rotary motor 109 is started in a timely manner to output power to drive the output end to operate, so that the conveyor bar 1010 drives the products to be conveyed intermittently.
[0038] The separation mechanism 2 also includes a control panel 202, a bolt seat 203, a through box 204, and a finned shaft compartment 205. The control panel 202 is bolted to the outer end of the rear base 201. The through box 204 is bolted to the upper inner end of the rear base 201 via the bolt seat 203, and the finned shaft compartment 205 is provided on the inner side of the through box 204.
[0039] In an embodiment of the present invention, when processing is required, the control panel 202 outputs a command. After the command is output, the drive motor 207 outputs power to drive the output end to run, so that the transmission housing 206 outputs to run, so that the pressure roller 209 on the isolation shaft plate 208 rotates inward. After the rotation, the product is effectively separated from the steel wire and rubber.
[0040] The separation mechanism 2 also includes a transmission housing 206, a drive motor 207, an isolation shaft plate 208, and a pressure roller 209. The outer end of the fin shaft compartment 205 is provided with a transmission housing 206 connected to the output end of the drive motor 207. The output end of the fin shaft compartment 205 passes through the isolation shaft plate 208 and is connected to the pressure roller 209.
[0041] In the embodiments of the present invention, since the through box 204 has a through open structure and the outer side of the fin shaft compartment 205 has a ring array of fins, the device can achieve a rapid cooling effect during operation.
[0042] The connecting transfer mechanism 3 also includes a toothed ring 302, a guide wheel 303, a slotted rod 304, an electric gear 305, a screw assembly 306, a sliding base 307, a first hydraulic arm 308, and a second hydraulic arm 309. The output end of the bolted column 301 is equipped with the toothed ring 302, and the inner side of the toothed ring 302 is tumbledly connected to the slotted rod 304 through the guide wheel 303. An electric gear 305 is provided above the outer end of the slotted rod 304. The output end of the slotted rod 304 is provided with the screw assembly 306, and the output end of the screw assembly 306 is threadedly connected to the sliding base 307. The outer side of the sliding base 307 is bolted to the first hydraulic arm 308, on which the second hydraulic arm 309 is installed.
[0043] In an embodiment of the present invention, after the steel wire is separated, the rack arm 3012 extends, and after extension, the first hydraulic arm 308 and the second hydraulic arm 309 operate to adjust the position of the sleeve 3010. The output is then carried out by the electric gear 305 on the slotted rod 304 and the lead screw assembly 306, so that the sleeve 3010 and the rack arm 3012 move the steel wire ring mounted on the clamp 3015 to the fine separation station.
[0044] The connecting transfer mechanism 3 also includes a housing 3010, an electric reduction gear 3011, a rack arm 3012, an electric rotating rod 3013, a pneumatic locking bar 3014, and a mounting jaw 3015. The output end of the second hydraulic arm 309 is provided with a housing 3010, and the housing 3010 is provided with a rack arm 3012 connected to the output end of the electric reduction gear 3011. The outer end of the rack arm 3012 is provided with an electric rotating rod 3013, and the output end of the electric rotating rod 3013 is provided with a mounting jaw 3015 for mounting the pneumatic locking bar 3014.
[0045] In an embodiment of the present invention, when material needs to be picked up, the electric reduction gear 3011 outputs power to drive the output end to run, so that the output operation of the electric reduction gear 3011 drives the rack arm 3012 to adjust to a suitable position, so that the mounting jaw 3015 hooks up the product. After the product is hooked up, the electric reduction gear 3011 outputs power to drive the mounting jaw 3015 to move the product to the processing position.
[0046] The adjusting and dispersing component 4 also includes an electric main gear 402, a helical gear 403, a pneumatic telescopic shaft 404, and an array screw 405. The slotted chamber 401 is equipped with an electric main gear 402, and the output end of the electric main gear 402 is equipped with a helical gear 403 that mounts the pneumatic telescopic shaft 404. The output end of the pneumatic telescopic shaft 404 is equipped with an array screw 405.
[0047] In embodiments of the present invention, when fine separation is required, the pneumatic telescopic shaft 404 at the inclined end is used to output and run, causing the helical gear 403 to engage with the electric main gear 402. After the electric main gear 402 and the helical gear 403 output and run, the inclined array screw 405 output and run to drive the flattening and transmission component 5 to run.
[0048] The adjusting and dispersing component 4 also includes a straight sliding seat 406, a first hydraulic telescopic seat 407, a second hydraulic telescopic seat 408, and an electric rotating steel brush 409. The straight output end of the array screw 405 is provided with a threaded straight sliding seat 406, and the outer side of the straight sliding seat 406 is provided with a bolted first hydraulic telescopic seat 407. The output end of the first hydraulic telescopic seat 407 is provided with a second hydraulic telescopic seat 408 on which the electric rotating steel brush 409 is installed.
[0049] In an embodiment of the present invention, after the product is flattened, the pneumatic telescopic shaft 404 at the straight end outputs and runs, causing the helical gear 403 to engage with the electric main gear 402. After the electric main gear 402 and the helical gear 403 output and run, the linear array screw 405 outputs and runs to drive the linear sliding seat 406 to adjust to a suitable position. As a result, after the first hydraulic telescopic seat 407 and the second hydraulic telescopic seat 408 extend and retract, the electric rotating steel brush 409 rotates and brushes off the steel wire ring, thereby improving the separation cleanliness of the equipment.
[0050] The flattening and conveying component 5 also includes a transmission chamber 504, a bearing bracket 505, a built-in motor 506, a worm gear 507, a splined shaft 508, a worm 509, an eccentric wheel 5010, a first hinge rod 5011, a second hinge rod 5012, a bearing sleeve 5013, and a flattening guide roller 5014. The transmission chamber 504 is pneumatically connected to the upper outer end of the inclined sliding seat 501, and the bearing bracket 505 is installed inside the transmission chamber 504. A connection to the built-in motor 506 is provided on one side of the bearing bracket 505. The worm 507 is located at the output end, and a splined shaft 508 and a turbine 509 are provided at the output end of the worm 507. An eccentric wheel 5010 is provided on the outer side of the turbine 509, and a first hinge rod 5011 is provided on the outer side of the eccentric wheel 5010. One end of the first hinge rod 5011 is hinged to a second hinge rod 5012, and one end of the second hinge rod 5012 is hinged to a bearing sleeve 5013 that is splinedly connected to the splined shaft 508. A flattening guide roller 5014 is provided at the output end of the bearing sleeve 5013.
[0051] In an embodiment of the present invention, after the inclined sliding seat 501 on the flattening and conveying component 5 is in operation, the limiting plate 502 and the transmission chamber 504 are pneumatically connected and adjusted to a suitable spacing position. Then, the carrying guide roller 503 and the flattening guide roller 5014 are adjusted to a suitable clamping position. Then, the built-in motor 506 is used to output power to drive the output end to run, so that the worm gear 507 and the spline shaft 508 can run. This causes the turbine 509, eccentric wheel 5010, first hinge rod 5011, second hinge rod 5012, and bearing sleeve 5013 to reciprocate through the hinges, causing the flattening guide roller 5014 to reciprocate. This causes the spline shaft 508 to run, so that the flattening guide roller 5014 cooperates with the carrying guide roller 503 to flatten the product.
[0052] The working principle of this invention is as follows: In use, a sufficient quantity of products is stacked parallel on the conveyor bar 1010. When feeding is required, the hydraulic telescopic rod 105 outputs power to drive the output end, adjusting the electric rotary seat 106 to a suitable height. The electric rotary seat 106 then drives the bolt connecting frame 107 and the bearing shaft plate 108 to a suitable orientation position. When feeding is needed, the rotary motor 109 is activated to output power, driving the output end and causing the conveyor bar 1010 to intermittently transport the products. When unloading is required, the electric reduction gear 3011 outputs power to drive the output end, causing the electric reduction gear 3011 to drive the rack arm. Adjust 3012 to a suitable position so that the clamping nozzle 3015 can hook the product. After hooking the product, the electric reduction gear 3011 outputs power, causing the clamping nozzle 3015 to move the product to the processing position. When processing is required, the control panel 202 outputs a command. After the command is output, the drive motor 207 outputs power to drive the output end, causing the transmission housing 206 to output power, causing the pressure roller 209 on the isolation shaft plate 208 to rotate inward. After rotation, the steel wire and rubber of the product are effectively separated. Because the through box 204 has a through-open structure and the outer side of the finned shaft compartment 205 has a ring array of fins, rapid cooling is achieved during equipment operation. The effect is that after the steel wire is separated, the rack arm 3012 extends, and after extension, the first hydraulic arm 308 and the second hydraulic arm 309 output and adjust the position of the sleeve 3010. The output is then carried out by the electric gear 305 on the slotted rod 304 and the screw assembly 306, so that the sleeve 3010 and rack arm 3012 move the steel wire ring mounted on the chuck 3015 to the fine separation station. When fine separation is required, the pneumatic telescopic shaft 404 at the inclined end outputs and causes the helical gear 403 to engage with the electric main gear 402. After the output of the electric main gear 402 and the helical gear 403, the inclined array screw 405 outputs and drives the flattening transmission component 5 to operate. After the inclined sliding seat 501 on the conveyor component 5 is in operation, the limiting plate 502 and the transmission chamber 504 are pneumatically adjusted to a suitable spacing position. Then, the carrying guide roller 503 and the flattening guide roller 5014 are adjusted to a suitable clamping position. Then, the built-in motor 506 outputs power to drive the output end to run, so that the worm gear 507 and the spline shaft 508 can run. This causes the worm gear 509, eccentric wheel 5010, first hinge rod 5011, second hinge rod 5012, and bearing sleeve 5013 to reciprocate through the hinges, causing the flattening guide roller 5014 to reciprocate. This causes the spline shaft 508 to run, so that the flattening guide roller 5014, in conjunction with the carrying guide roller 503, flattens the product.After the product is flattened, the pneumatic telescopic shaft 404 at the straight end operates, causing the helical gear 403 to engage with the electric main gear 402. After the electric main gear 402 and the helical gear 403 operate, the linear array screw 405 operates, driving the linear sliding seat 406 to adjust to a suitable position. This causes the first hydraulic telescopic seat 407 and the second hydraulic telescopic seat 408 to extend and retract, causing the electric rotating steel brush 409 to rotate and brush off the steel wire rings, thereby improving the separation cleanliness of the equipment. Larger waste materials are stored in the large material carrier box 102, and smaller waste materials are stored in the small material carrier box 103.
[0053] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
[0054] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. A waste tire rubber and steel wire separation device based on resource recycling technology, comprising a feeding and discharging component (1), a separation mechanism (2), a connecting and transferring mechanism (3), an adjusting and dispersing component (4), and a flattening and conveying component (5), characterized in that: The bearing base (101) on the bearing feed and discharge component (1) is provided with a rear base (201) on the separation mechanism (2) above one end, and a bolt connecting column (301) on the connecting transfer mechanism (3) is provided above the outer end of the rear base (201). A slotted bin (401) on the adjusting and dispersing component (4) is provided on the outer side of the rear base (201), and an inclined sliding seat (501) on the flattening and conveying component (5) is threaded to the inclined output end of the adjusting and dispersing component (4). The flattening and conveying component (5) also includes a limiting plate (502) and a bearing guide roller (503), and the outer end of the inclined sliding seat (501) is bolted to the limiting plate (502) for mounting the bearing guide roller (503).
2. The waste tire rubber and steel wire separation device based on resource recycling technology according to claim 1, characterized in that: The material handling component (1) further includes a large material carrier box (102), a small material carrier box (103), and a front base (104). The large material carrier box (102) is located above the middle part of the carrier base (101), the small material carrier box (103) is located on the outer side of the rear end of the carrier base (101), and the front base (104) is located above the other end of the carrier base (101).
3. The waste tire rubber and steel wire separation device based on resource recycling technology according to claim 2, characterized in that: The material handling component (1) also includes a hydraulic telescopic rod (105), an electric rotating seat (106), a bolted frame (107), a bearing shaft plate (108), a rotary motor (109), and a transmission guide (1010). The hydraulic telescopic rod (105) is provided above the middle part of the front base (104), and the output end of the hydraulic telescopic rod (105) is provided with an electric rotating seat (106). The top outer side of the electric rotating seat (106) is bolted to a bolted frame (107), and the top outer side of the bolted frame (107) is bolted to a bearing shaft plate (108). The inner side of the bearing shaft plate (108) is provided with a transmission guide (1010) that connects to the output end of the rotary motor (109).
4. The waste tire rubber and steel wire separation device based on resource recycling technology according to claim 1, characterized in that: The separation mechanism (2) also includes a control panel (202), a bolt seat (203), a through box (204), and a fin shaft compartment (205). The control panel (202) is bolted to the outer end of the rear base (201). The through box (204) is bolted to the upper part of the inner end of the rear base (201) through the bolt seat (203). The fin shaft compartment (205) is provided on the inner side of the through box (204).
5. The waste tire rubber and steel wire separation device based on resource recycling technology according to claim 4, characterized in that: The separation mechanism (2) also includes a transmission housing (206), a drive motor (207), an isolation shaft plate (208), and a pressure roller (209). The outer end of the fin shaft compartment (205) is provided with a transmission housing (206) that connects to the output end of the drive motor (207). The output end of the fin shaft compartment (205) passes through the isolation shaft plate (208) and is connected to the pressure roller (209).
6. The waste tire rubber steel wire separation device based on resource recycling technology according to claim 1, characterized in that: The connecting transfer mechanism (3) also includes a toothed ring (302), a guide wheel (303), a slotted rod (304), an electric gear (305), a screw assembly (306), a sliding base (307), a first hydraulic arm (308), and a second hydraulic arm (309). The output end of the bolted column (301) is equipped with a toothed ring (302), and the inner side of the toothed ring (302) is tumbledly connected to the slotted rod (304) through the guide wheel (303). An electric gear (305) is provided above the outer end of the slotted rod (304). The output end of the slotted rod (304) is provided with a screw assembly (306), and the output end of the screw assembly (306) is threadedly connected to the sliding base (307). The outer side of the sliding base (307) is bolted to the first hydraulic arm (308) on which the second hydraulic arm (309) is installed.
7. The waste tire rubber and steel wire separation device based on resource recycling technology according to claim 6, characterized in that: The connecting and transferring mechanism (3) also includes a housing (3010), an electric reduction gear (3011), a rack arm (3012), an electric rotating rod (3013), a pneumatic locking bar (3014), and a mounting nozzle (3015). The output end of the second hydraulic arm (309) is provided with a housing (3010), and the housing (3010) is provided with a rack arm (3012) connected to the output end of the electric reduction gear (3011). The outer end of the rack arm (3012) is provided with an electric rotating rod (3013), and the output end of the electric rotating rod (3013) is provided with a mounting nozzle (3015) for mounting the pneumatic locking bar (3014).
8. The waste tire rubber and steel wire separation device based on resource recycling technology according to claim 1, characterized in that: The adjusting and dispersing component (4) also includes an electric main gear (402), a helical gear (403), a pneumatic telescopic shaft (404), and an array screw (405). The slotted chamber (401) is equipped with an electric main gear (402), and the output end of the electric main gear (402) is equipped with a helical gear (403) on which the pneumatic telescopic shaft (404) is mounted. The output end of the pneumatic telescopic shaft (404) is equipped with an array screw (405).
9. The waste tire rubber and steel wire separation device based on resource recycling technology according to claim 8, characterized in that: The adjusting and dispersing component (4) also includes a straight sliding seat (406), a first hydraulic telescopic seat (407), a second hydraulic telescopic seat (408), and an electric rotating steel brush (409). The straight output end of the array screw (405) is provided with a threaded straight sliding seat (406), and the outer side of the straight sliding seat (406) is provided with a bolted first hydraulic telescopic seat (407). The output end of the first hydraulic telescopic seat (407) is provided with a second hydraulic telescopic seat (408) on which the electric rotating steel brush (409) is installed.
10. The waste tire rubber and steel wire separation device based on resource recycling technology according to claim 1, characterized in that: The flattening and conveying component (5) further includes a transmission chamber (504), a bearing bracket (505), a built-in motor (506), a worm gear (507), a splined shaft (508), a turbine (509), an eccentric wheel (5010), a first hinge rod (5011), a second hinge rod (5012), a bearing sleeve (5013), and a flattening guide roller (5014). The transmission chamber (504) is pneumatically connected to the upper outer end of the inclined sliding seat (501), and the bearing bracket (505) is provided inside the transmission chamber (504). A connection to the built-in motor (506) is provided on one side of the bearing bracket (505). The worm (507) at the output end is provided with a splined shaft (508) and a turbine (509). An eccentric wheel (5010) is provided on the outer side of the turbine (509). A first hinge rod (5011) is provided on the outer side of the eccentric wheel (5010). A second hinge rod (5012) is hinged to one end of the first hinge rod (5011). A bearing sleeve (5013) that is splinedly connected to the splined shaft (508) is hinged to one end of the second hinge rod (5012). A flattening guide roller (5014) is provided at the output end of the bearing sleeve (5013).